3

Is there a smart way to write the following code in three or four lines?

a=l["artist"]
if a:
    b=a["projects"]
    if b:
        c=b["project"]
        if c:
            print c

So I thought for something like pseudocode:

a = l["artist"] if True:
7
  • It seems that you are dealing with a nested dictionary. You can use get() attribute in order to get the values for a specific key which, accepts an default argument to be return if it couldn't found the key.
    – kasravnd
    Aug 1 '16 at 13:50
  • Do you actually care if a and b are set as long as the value of c is printed?
    – chepner
    Aug 1 '16 at 13:50
  • 7
    l.get("artist", {}).get("projects", {}).get("project", None), though that isn't particularly more readable. Aug 1 '16 at 13:51
  • What does your data look like exactly, does l["artist"] always exist, and if it's not an empty dictionary, then "projects" always exists and so on? Aug 1 '16 at 13:54
  • @chepner no i just want to return c later on
    – Florian
    Aug 1 '16 at 13:58
8

How about:

try:
    print l["artist"]["projects"]["project"]
except KeyError:
    pass
except TypeError:
    pass # None["key"] raises TypeError. 

This will try to print the value, but if a KeyError is raised, the except block will be run. pass means to do nothing. This is known and EAFP: it’s Easier to Ask Forgiveness than Permission.

1
  • this raises TypeError "NoneType" has no attribute "getitem"
    – Florian
    Aug 1 '16 at 14:03
5

I don't necessarily think that this is better but you could do:

try:
    c = l["artist"]["projects"]["project"]
except (KeyError, TypeError) as e:
    print e
    pass
9
  • 5
    Probably better to use except KeyError.
    – RedX
    Aug 1 '16 at 13:50
  • 1
    This is not functionally the same. OP's code will throw exceptions if the key is missing.
    – freakish
    Aug 1 '16 at 13:52
  • That's more likely a shortcoming of the OP's code than a desired side effect, but that is some context that is missing from the question.
    – chepner
    Aug 1 '16 at 13:53
  • The other difference is that if for example l["artist"] is False then OP's code does nothing.
    – freakish
    Aug 1 '16 at 13:54
  • In particular, if the final value is falsy, his code doesn't print and yours does. Aug 1 '16 at 13:55
0
p = l.get('artist') and l['artist'].get('projects') and l['artist']['projects'].get('project')
if p:
     print p

You can also make a more general function for this purpose:

def get_attr(lst, attr):
    current = lst
    for a in attr:
        if current.get(a) is not None:
            current = current.get(a)
        else:
            break
    return current

>>> l = {'artist':{'projects':{'project':1625}}}
>>> get_attr(l,['artist','projects','project'])
1625
0

One-liner (as in the title) without exceptions:

if "artist" in l and l["artist"] and "projects" in l["artist"] and l["artist"]["projects"] and "project" in l["artist"]["projects"]: print l["artist"]["projects"]["project"]
4
  • else pass will raise a SyntaxError (it' not an expression) Aug 1 '16 at 13:58
  • @RemcoGerlich fixed
    – user3235832
    Aug 1 '16 at 13:59
  • That's really long for a one-liner; I'd at least use if l.get("artist", False) and ... to combine both the access and truthiness test for each key.
    – chepner
    Aug 1 '16 at 14:08
  • @chepner yeah I know... all the other guys went for "smart", I just went for "one-liner"
    – user3235832
    Aug 1 '16 at 14:09
0

Since you're dealing with nested dictionaries, you might find this generic one-liner useful because it will allow you to access values at any level just by passing it more keys arguments:

nested_dict_get = lambda item, *keys: reduce(lambda d, k: d.get(k), keys, item)

l = {'artist': {'projects': {'project': 'the_value'}}}

print( nested_dict_get(l, 'artist', 'projects', 'project') ) # -> the_value

Note: In Python 3, you'd need to add a from functools import reduce at the top.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.